Literature DB >> 11023869

Molecular, biochemical and functional analysis of a novel and developmentally important fibrillar collagen (Hcol-I) in hydra.

R Deutzmann1, S Fowler, X Zhang, K Boone, S Dexter, R P Boot-Handford, R Rachel, M P Sarras.   

Abstract

The body wall of hydra (a member of the phylum Cnidaria) is structurally reduced to an epithelial bilayer with an intervening extracellular matrix (ECM). Previous studies have established that cell-ECM interactions are important for morphogenesis and cell differentiation in this simple metazoan. The ECM of hydra is particularly interesting because it represents a primordial form of matrix. Despite progress in our understanding of hydra ECM, we still know little about the nature of hydra collagens. In the current study we provide a molecular, biochemical and functional analysis of a hydra fibrillar collagen that has similarity to vertebrate type I and type II collagens. This fibrillar collagen has been named hydra collagen-I (Hcol-I) because of its structure and because it is the first ECM collagen to be identified in hydra. It represents a novel member of the collagen family. Similar to vertebrate type I and II collagens, Hcol-I contains an N-terminal propeptide-like domain, a triple helical domain containing typical Gly-X-Y repeats and a C-terminal propeptide domain. The overall identity to vertebrate fibrillar collagens is about 30%, while the identity of the C-terminal propeptide domain is 50%. Because the N-terminal propeptide domain is retained after post-translational processing, Hcol-I does not form thick fibers as seen in vertebrates. This was confirmed using transmission electron microscopy to study rotary shadow images of purified Hcol-I. In addition, absence of crucial lysine residues and an overall reduction in proline content, results in reduced crosslinking of fibrils and increased flexibility of the molecule, respectively. These structural changes in Hcol-I help to explain the flexible properties of hydra ECM. Immunocytochemical studies indicate that Hcol-I forms the 10 nm fibrils that comprise the majority of molecules in the central fibrous zone of hydra ECM. The central fibrous zone resides between the two subepithelial zones where hydra laminin is localized. While previous studies have shown that basal lamina components like laminin are expressed by the endoderm, in situ hybridisation studies show that Hcol-I mRNA expression is restricted to the ectoderm. Hcol-I expression is upregulated during head regeneration, and antisense studies using thio-oligonucleotides demonstrated that blocking the translation of Hcol-I leads to a reversible inhibition of head morphogenesis during this regenerative process. Taken in total, the data presented in this study indicate that Hcol-I is required for morphogensis in hydra and represents a novel fibrillar collagen whose structural characteristics help to explain the unique biophysical properties of hydra ECM. Interestingly, the structure of Hcol-I mimics what is seen in Ehlers-Danlos syndrome type VII in humans; an inherited pathological condition that leads to joint and skin abnormalities. Hcol-I therefore illustrates an adaptive trait in which the normal physiological situation in hydra translates into a pathological condition in humans.

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Year:  2000        PMID: 11023869     DOI: 10.1242/dev.127.21.4669

Source DB:  PubMed          Journal:  Development        ISSN: 0950-1991            Impact factor:   6.868


  14 in total

1.  A switch in disulfide linkage during minicollagen assembly in Hydra nematocysts.

Authors:  U Engel; O Pertz; C Fauser; J Engel; C N David; T W Holstein
Journal:  EMBO J       Date:  2001-06-15       Impact factor: 11.598

2.  Molecular characterization of a nonfibrillar collagen from the marine sponge Chondrosia reniformis Nardo 1847 and positive effects of soluble silicates on its expression.

Authors:  Marina Pozzolini; Federica Bruzzone; Valentina Berilli; Francesca Mussino; Carlo Cerrano; Umberto Benatti; Marco Giovine
Journal:  Mar Biotechnol (NY)       Date:  2011-11-10       Impact factor: 3.619

3.  In vivo imaging of basement membrane movement: ECM patterning shapes Hydra polyps.

Authors:  Roland Aufschnaiter; Evan A Zamir; Charles D Little; Suat Özbek; Sandra Münder; Charles N David; Li Li; Michael P Sarras; Xiaoming Zhang
Journal:  J Cell Sci       Date:  2011-12-01       Impact factor: 5.285

4.  Micro- and macrorheology of jellyfish extracellular matrix.

Authors:  Camille Gambini; Bérengère Abou; Alain Ponton; Annemiek J M Cornelissen
Journal:  Biophys J       Date:  2012-01-03       Impact factor: 4.033

5.  Demosponge and sea anemone fibrillar collagen diversity reveals the early emergence of A/C clades and the maintenance of the modular structure of type V/XI collagens from sponge to human.

Authors:  Jean-Yves Exposito; Claire Larroux; Caroline Cluzel; Ulrich Valcourt; Claire Lethias; Bernard M Degnan
Journal:  J Biol Chem       Date:  2008-08-11       Impact factor: 5.157

6.  The extracellular matrix of hydra is a porous sheet and contains type IV collagen.

Authors:  Hiroshi Shimizu; Roland Aufschnaiter; Li Li; Michael P Sarras; Dorin-Bogdan Borza; Dale R Abrahamson; Yoshikazu Sado; Xiaoming Zhang
Journal:  Zoology (Jena)       Date:  2008-07-07       Impact factor: 2.240

7.  Differential gene regulation in DAPT-treated Hydra reveals candidate direct Notch signalling targets.

Authors:  Jasmin Moneer; Stefan Siebert; Stefan Krebs; Jack Cazet; Andrea Prexl; Qin Pan; Celina Juliano; Angelika Böttger
Journal:  J Cell Sci       Date:  2021-08-04       Impact factor: 5.235

8.  The integrins of the urochordate Ciona intestinalis provide novel insights into the molecular evolution of the vertebrate integrin family.

Authors:  Richard Ewan; Julie Huxley-Jones; A Paul Mould; Martin J Humphries; David L Robertson; Raymond P Boot-Handford
Journal:  BMC Evol Biol       Date:  2005-05-13       Impact factor: 3.260

9.  Differential tissue stiffness of body column facilitates locomotion of Hydra on solid substrates.

Authors:  Suyash Naik; Manu Unni; Devanshu Sinha; Shatruhan Singh Rajput; Puli Chandramouli Reddy; Elena Kartvelishvily; Inna Solomonov; Irit Sagi; Apratim Chatterji; Shivprasad Patil; Sanjeev Galande
Journal:  J Exp Biol       Date:  2020-10-29       Impact factor: 3.312

10.  Cubozoan venom-induced cardiovascular collapse is caused by hyperkalemia and prevented by zinc gluconate in mice.

Authors:  Angel A Yanagihara; Ralph V Shohet
Journal:  PLoS One       Date:  2012-12-12       Impact factor: 3.240

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